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IEEE 802.16 can be seen as a compelling replacement for conventional broadband technologies because its primary goal is to provide Broadband Wireless Access (BWA). The variable and uncertain nature of wireless networks makes it much more challenging to ensure QoS in this network. WiMAX Technology is used to support various quality of services which includes UGS, rtps, nrtps, ertps, and Best Effort. This study employs an IEEE 802.16 network simulator, which offers adaptable and reliable features for assessing a particular QoS parameters for rtps. Achieving better internet performance in real time services is currently a challenge, and it is in need of a present scenario. This work emphasized better internet service, with good quality of service using rtps with Relay Station and Without Relay Station. In this work the CBR packet size, CBR data rate, and data rate with rtps service are fine-tuned for achieving better performance with good quality of service. When comparing uplink connections in rtps with and without relay station, it is found that the throughput in the uplink is 200% greater when using a relay station. The throughput and goodput are evaluated in uploading and downloading with single and multiple subscriber stations and we observed that the multiple subscriber stations in downloading give better performance, as compared to single subscriber stations. The throughput and goodput in single subscriber stations is better than multiple subscriber stations in uploading. The academic researchers and commercial developers can use this analysis to validate different WiMAX Network implementation mechanisms and parameters.
Słowa kluczowe
Rocznik
Tom
Strony
89--98
Opis fizyczny
Bibliogr. 25 poz., rys.
Twórcy
autor
- Department of Computer Science and Engineering, Sangam University, Bhilwara, Rajasthan, India
autor
- Department of Computer Science and Engineering, Sangam University, Bhilwara, Rajasthan, India
autor
- Department Computer Science and Engineering, MediCaps University, Indore, Madhya Pradesh, India
Bibliografia
- [1] “IEEE Standard for Local and Metropolitan Area Networks Part 16: Air Interface for Fixed Broadband Wireless Access Systems,” IEEE Std 802.16-2004 (Revision of IEEE Std 802.16-2001). pp. 0_1-857, 2004. doi: 10.1109/IEEESTD.2004.226664.
- [2] T. Bohnert, Y. Koucheryavy, M. Katz, E. Borcoci, and E. Monteiro, “Network Simulation and Performance Evaluation of WiMAX Extensions for Isolated Research Data Networks,” IEEE J. Commun. Softw. Syst., vol. 4, p. n/a, Mar. 2008, doi: 10.24138/jcomss.v4i1.238.
- [3] E. M. Cenk and A. Nail, “rtPS Uplink Scheduling Algorithms for IEEE 802.16 Networks,” in Proceedings of Eighth International Symposium on Computer Networks (ISCN’08), ISBN: 978-975-518-295-7, Copyright ©2008 by Boğaziçi University, 2008, pp. 141–147.
- [4] S. Ghazal, L. Mokdad, and J. Ben-Othman, “Performance Analysis of UGS, rtPS, nrtPS Admission Control in WiMAX Networks,” in 2008 IEEE International Conference on Communications, 2008, pp. 2696–2701. doi: 10.1109/ICC.2008.509.
- [5] C. So-In, R. Jain, and A.-K. Tamimi, “Scheduling in IEEE 802.16e mobile WiMAX networks: key issues and a survey,” IEEE J. Sel. Areas Commun., vol. 27, no. 2, pp. 156–171, 2009, doi: 10.1109/JSAC.2009.090207.
- [6] I. Adhicandra, R. Garroppo, and S. Giordano, “Configuration of WiMAX Networks supporting Data and VoIP trafϐic,” Aug. 2008. [Online]. Available: https://www.researchgate.net/publication/299366342_Configuration_of_WiMAX_Networks_supporting_Data_and_VoIP_traffic#fullTextFileContent.
- [7] T. Raina, P. Gupta, B. Kumar, and B. L. Raina, “Downlink Scheduling Delay Analysis of rtps to nrtps and BE Services in WiMAX,” Int. J. Adv. Res. IT Eng., vol. 6, no. 2, pp. 47–63, 2013, [Online]. Available: chrome-extension://efaidnbmnnni bpcajpcglclefindmkaj/https://garph.co.uk/IJARIE/June2013/6.pdf.
- [8] B. Kharthika and G. M. Vigneswari, “Improve WiMAX Network Performance Using Cross-Layer Framework,” Int. J. Sci. Eng. Res., vol. 4, no. 1, 2013, [Online]. Available: chrome-extension: //efaidnbmnnnibpcajpcglclefindmkaj/https: //www.ijser.org/researchpaper/Improve-WiMAX-Network-Performance-Using-Cross-Layer-Framework.pdf.
- [9] A. Lygizou, S. Xergias, and N. Passas, “rtPS Scheduling with QoE Metrics in Joint WiMAX/Satellite Networks,” P. Pillai, R. Shorey, and E. Ferro, Eds. Berlin, Heidelberg: Springer Berlin Heidelberg, 2013, pp. 1–8. doi: 10.1007/978-3-642-36787-8_1.
- [10] A. L. Yadav, P. D. Vyavahare, and P. P. Bansod, “Review of WiMAX Scheduling Algorithms and Their Classiϐication,”J. Inst. Eng. Ser. B, vol. 96, no. 2, pp. 197–208, 2015, doi: 10.1007/s40031-014-0145-5.
- [11] D. M. S. Madhuri, D. Reethu, C. K. Mani, and T. A. V. S. S. N. Raju, “Service Prioritized Opportunistic Scheduling Algorithm for WiMAX Mobile Multi-Hop Relay Networks,” Int. J. Eng. Res. Technol., vol. 03, no. 02, pp. 2274–2279, 2014, [Online]. Available: https://www.ijert.org/research/service-prioritized-opportunistic-scheduling-algorithm-for-wimax-mobile-multi-hop-relay-networks-IJERTV3IS21432.pdf.
- [12] R. A. Talwalkar and M. Ilyas, “Analysis of Quality of Service (QoS) in WiMAX networks,” in 2008 16th IEEE International Conference on Networks, 2008, pp. 1–8. doi: 10.1109/ICON. 2008.4772615.
- [13] P. Sapna and D. Priyanka, “Optimizing IEEE 802.16j: Multihop Relaying in WiMAX Networks,” Int. J. Eng. Trends Technol., vol. 19, no. 1, pp. 24–28, 2015, [Online]. Available: https://ijettjournal.org/assets/volume/volume-19/number-1/IJETT-V19P206.pdf.
- [14] N. N. Alfaisaly, S. Q. Naeem, and A. H. Neama, “Enhancement of WiMAX Networks using OPNET Modeler Platform,” Indones. J. Electr. Eng. Comput. Sci., vol. 23, no. 3, pp. 1510–1519, 2021, doi: http://doi.org/10.11591/ijeecs.v23.i3.pp1510-1519.
- [15] S. S B, S. M S, S. Pathak, S. Irfan, and R. H, “Analysis Of Scheduling Algorithm in WiMAX Network,” J. Emerg. Technol. Innov. Res., vol. 6, no. 6, pp. 414–418, 2019, [Online]. Available: https://www.jetir.org/papers/JETIR1906A64.pdf.
- [16] C.-Y. Chang, M.-H. Li, W.-C. Huang, and C.-C. Chen, “An Efficient Scheduling Algorithm for Maximizing Throughput in WiMAX Mesh Networks,” in Proceedings of the 2009 International Conference on Wireless Communications and Mobile Computing: Connecting the World Wirelessly, 2009, pp. 542–546. doi: 10.1145/1582379.1582497.
- [17] K. J. Kim and B. D. Choi, “Performance Analysis of Extended RtPS Algorithm for VoIP Service by Matrix Analytic Method in IEEE 802.16e with Adaptive Modulation and Coding,” 2009. doi: 10.1145/1626553.1626564.
- [18] B.-J. Chang, Y.-H. Liang, and S.-S. Su, “Analyses of QoS-based relay deployment in 4G LTE-A wireless mobile relay networks,” in 2015 21st Asia-Pacifc Conference on Communications (APCC), 2015, pp. 62–67. doi: 10.1109/APCC.2015.7412581.
- [19] J. M. Mrquez-Barja, C. T. Calafate, J.-C. Cano, and P. Manzoni, “Evaluating the Performance Boundaries of WI-FI, WiMAX and UMTS Using the Network Simulator (Ns-2),” in Proceedings of the 5th ACM Workshop on Performance Monitoring and Measurement of Heterogeneous Wireless and Wired Networks, 2010, pp. 25–30. doi: 10.1145/1868612.1868618.
- [20] H. M. Ismail and M. I. Ashour, “Analysis and Design of IEEE 802.16 Uplink Scheduling Algorithms and Proposing the IRA Algorithm for RtPS QoS Class,” in Proceedings of the 6th ACM Workshop on Wireless Multimedia Networking and Computing, 2011, pp. 49–54. doi: 10.1145/2069117.2069127.
- [21] B. Al-Madani, M. Al-Saeedi, and A. A. Al-Roubaiey, “Scalable Wireless Video Streaming over Real-Time Publish Subscribe Protocol (RTPS),” in 2013 IEEE/ACM 17th International Symposium on Distributed Simulation and Real Time Applications, 2013, pp. 221–230. doi: 10.1109/DS-RT.2013.32.
- [22] R. C. Garcia, B. S. Reyes Daza, and O. J. Salcedo, “Evaluation of Quality Service Voice over Internet Protocol in WiMAX Networks Based on IP/MPLS Environment,” in Proceedings of the 11th ACM Symposium on QoS and Security for Wireless and Mobile Networks, 2015, pp. 59–66. doi: 10.1145/2815317.2815322.
- [23] R. Underwood, J. Anderson, and A. Apon, “Measuring Network Latency Variation Impacts to High Performance Computing Application Performance,” in Proceedings of the 2018 ACM/SPEC International Conference on Performance Engineering, 2018, pp. 68–79. doi: 10.1145/ 3184407.3184427.
- [24] A. Busch and M. Kammerer, “Network Performance Influences of Software-Defined Networks on Micro-Service Architectures,” in Proceedings of the ACM/SPEC International Conference on Performance Engineering, 2021, pp. 153–163. doi: 10.1145/3427921.3450236.
- [25] “The Network Simulator - Ns-2,” 2022. https: //www.isi.edu/nsnam/ns/ (accessed Jun. 18, 2022)
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr POPUL/SP/0154/2024/02 w ramach programu "Społeczna odpowiedzialność nauki II" - moduł: Popularyzacja nauki (2025).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-5e1259a6-fa21-49ec-b89f-bf4f79b4a8c6
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